4.8 Article

Designing an Excellent Deep-Ultraviolet Birefringent Material for Light Polarization

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 140, Issue 47, Pages 16311-16319

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.8b10009

Keywords

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Funding

  1. National Natural Science Foundation of China [51425206, 91622107]
  2. National Key Research Project [2016YFB1102302, 2016YFB0402104]
  3. Xinjiang Key Research and Development Program [2016B02021]
  4. Major Program of Xinjiang Uygur Autonomous Region of China [2016A02003]
  5. Youth Innovation Promotion Association, CAS [2012305]
  6. National Science Foundation [DMR-1307698, 1608218]

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Owing to their vital role in creating and controlling polarized light, birefringent materials are used extensively in various advanced optical systems which in turn impact a large, rapidly increasing range of applications in science and technology. Currently, the fairly small birefringence of MgF2 and the low transmittance of alpha-BaB2O4 (alpha-BBO) hinder their efficient application for wavelength below 200 nm. For example, deep ultraviolet (DUV) birefringent materials for light polarization are urgently needed for DUV lithography. Here we demonstrate based on computational and experimental results that parallel chains of corner-connected planar sp(2)-hybridized BO3 groups found in Ca(BO2)(2) effectively produce large birefringence. Ca(BO2)(2) achieves three vital best properties including the shortest UV cutoff edge, the largest birefringence, and the highest laser-induced damage threshold (LIDT) compared to all the reported borate birefringent materials. On the basis of a Ca(BO2)(2) single crystal, a DUV Glan polarizer has been realized and is more efficient than one constructed with commercially available MgF2.

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